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Analysis of observer performance in unknown-location tasks for tomographic image reconstruction

机译:断层图像重建中未知位置任务中观察者性能的分析

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Our goal is to optimize regularized image reconstruction for emission tomography with respect to lesion detectability in the reconstructed images. We consider model observers whose decision variable is the maximum value of a local test statistic within a search area. Previous approaches have used simulations to evaluate the performance of such observers. We propose an alternative approach, where approximations of tail probabilities for the maximum of correlated Gaussian random fields facilitate analytical evaluation of detection performance. We illustrate how these approximations, which are reasonably accurate at low probability of false alarm operating points, can be used to optimize regularization with respect to lesion detectability.
机译:我们的目标是针对已重建图像中的病变可检测性,针对放射线断层摄影优化正则化图像重建。我们考虑模型观察者,他们的决策变量是搜索区域内局部测试统计量的最大值。先前的方法已经使用模拟来评估这种观察者的表现。我们提出了一种替代方法,其中最大相关高斯随机场的尾部概率近似值有助于检测性能的分析评估。我们说明了这些近似值(在误报警操作点的可能性很小的情况下合理准确)如何可以用于优化针对病变可检测性的正则化。

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